Rotating electric machine housing, rotating electric machine, and additive manufacturing method

The integrated oil and gas cooling system in the rotating electric machine housing, facilitated by additive manufacturing, addresses the size and efficiency challenges of existing cooling mechanisms, achieving compact and efficient cooling for rotating electric machines.

JP7724181B2Active Publication Date: 2025-08-15HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2022060351
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-31
Publication Date
2025-08-15
Estimated Expiration
2042-03-31

AI Technical Summary

Technical Problem

Rotating electric machines coupled to internal combustion engines face challenges in energy efficiency due to the need for separate cooling mechanisms for oil and gas, which can increase the machine's size and complexity.

Method used

A rotating electric machine housing with integrated oil and gas flow paths that exchange heat with a common water jacket, allowing for compact cooling of both oil and gas, and an additive manufacturing method using powdered metal to form these components.

Benefits of technology

The integrated cooling mechanism reduces the size and weight of the rotating electric machine while ensuring efficient heat exchange, promoting energy efficiency and cost-effectiveness.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a rotary electric machine housing which enables a cooling mechanism for cooling an oil and a gas to be formed compactly in a rotary electric machine in which the oil and the gas flow, and a rotary electric machine, and to provide a lamination molding method by which the rotary electric machine housing is molded.SOLUTION: A housing 40 of a power generator 1 includes: a hollow body part 41 having a storage space S in which components of the power generator 1 are housed; a water jacket 60 provided at the body part 41; an oil passage 80 which communicates with the storage space S and in which an oil to be supplied to the components flows; and a gas passage 70 which communicates with the storage space S and in which a gas to be supplied to the components flows. The oil passage 80 and the gas passage 70 are provided so as to allow the oil and the gas to conduct heat exchange with a refrigerant flowing in the water jacket 60.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a rotating electric machine housing, a rotating electric machine, and an additive manufacturing method. [Background technology]

[0002] In recent years, research and development has been conducted to contribute to energy efficiency, ensuring that more people have access to affordable, reliable, sustainable and advanced energy.

[0003] In rotating electrical machines such as motors and generators, it is necessary to suppress output reduction in order to improve energy efficiency. Because output reduction occurs when the rotating electrical machine becomes hot, it is necessary to provide a cooling mechanism in the rotating electrical machine to suppress the output reduction. For example, Patent Documents 1 and 2 disclose cooling the motor by flowing cooling water through a water jacket provided in the motor housing. Patent Document 2 also discloses a configuration in which oil is supplied into the motor to cool it, and an oil cooler is provided to cool the oil. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 4206799 [Patent Document 2] Patent No. 6428434 Summary of the Invention [Problem to be solved by the invention]

[0005] Incidentally, rotating electric machines are sometimes coupled to internal combustion engines such as gas turbine engines. When considering energy efficiency improvements for rotating electric machines, it may be effective to focus not only on the energy of the rotating electric machine, but also on the energy of the entire system including the rotating electric machine and the internal combustion engine. For example, it may be possible to effectively utilize gas generated by the internal combustion engine (e.g., high-temperature compressed air generated by compression in the compressor of the internal combustion engine) to cool the rotating electric machine.

[0006] When gas generated in an internal combustion engine is supplied to a rotating electrical machine, a cooling mechanism is required to cool the high-temperature gas. Patent Document 1 does not disclose a configuration for supplying gas to a rotating electrical machine, but does disclose a configuration for supplying compressed gas to a fuel cell, and an intercooler is provided to cool the compressed gas.

[0007] When considering a configuration in which gas is supplied to a rotating electrical machine in addition to oil, there is a risk that the rotating electrical machine will become larger due to the need to provide an oil cooler for cooling the oil and an intercooler for cooling the gas.

[0008] The present invention provides a rotating electric machine housing and a rotating electric machine that can make a cooling mechanism for cooling oil and gas compact in a rotating electric machine through which oil and gas flow, and also provides an additive manufacturing method for manufacturing such a rotating electric machine housing. [Means for solving the problem]

[0009] [1] The present invention provides A rotating electric machine housing capable of accommodating components of a rotating electric machine, a hollow body portion having an accommodation space in which the component is accommodated; a water jacket provided in the main body; an oil flow path that communicates with the accommodation space and through which oil supplied to the component flows; a gas flow path that communicates with the accommodation space and through which gas supplied to the component flows, The oil flow path and the gas flow path are provided so that the oil and the gas can exchange heat with the refrigerant flowing through the water jacket.

[0010] [2] The present invention also provides [1] A rotating electric machine housing; a rotor and a stator housed in the main body, a rotor shaft of the rotor is connected to a rotating shaft of an internal combustion engine that generates the gas; the gas flow path communicates with a gas outlet of the internal combustion engine; the water jacket cools the gas flowing through the gas flow path; The gas that has passed through the gas flow path and been cooled is supplied to at least one of the rotor and the stator.

[0011] [3] The present invention also provides [1] An additive manufacturing method for additively manufacturing the rotating electric machine housing according to [1] using powdered metal, The main body, the gas flow path, the oil flow path, and the water jacket are integrally formed. [Effects of the Invention]

[0012] According to the present invention, in a rotating electrical machine through which oil and gas flow, the cooling mechanism for cooling the oil and gas can be made compact. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a schematic cross-sectional view of a generator 1. FIG. [Figure 2] FIG. 2 is a perspective view of a housing 40 of the generator 1. [Figure 3] 3 is a view of the housing 40 cut away at the Y plane in FIG. 2, seen obliquely from above, and is a schematic diagram showing the flow of oil supplied from the oil supply unit 90 and the flow of gas flowing through the gas flow passage 71. FIG. [Figure 4] 3 is a schematic diagram showing the flow of refrigerant in the water jacket 60. FIG. [Figure 5]3 is a schematic diagram showing the flow of gas in a gas passage 70 and the flow of oil in an oil passage 80 in a water jacket 60. FIG. [Figure 6] 3. FIG. 4 is a diagram showing a part of a cross section of a second refrigerant flow path 62 and a gas flow path 70 (a cross section of part Z in FIG. 3). DETAILED DESCRIPTION OF THE INVENTION

[0014] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An embodiment of a rotating electrical machine according to the present invention will now be described with reference to the drawings.

[0015] 1, a generator 1, which is an example of a rotating electric machine of the present invention, includes a rotor shaft 10, a rotor 20 that rotates integrally with the rotor shaft 10, a stator 30 that is disposed at a predetermined radial distance from the outer circumferential surface of the rotor 20, a housing 40 that accommodates the rotor 20 and the stator 30, and a pair of bearings 51, 52 that are disposed on one end and the other end in the axial direction across the rotor 20 and support the rotor shaft 10 rotatably relative to the housing 40. A permanent magnet (not shown) is attached to the rotor 20, and the stator 30 has a stator core 31 around which a coil 32 is wound.

[0016] A gas turbine engine 2, which is an example of an internal combustion engine, is connected to the generator 1. Although not shown, the gas turbine engine 2 burns air compressed by a compressor and fuel (methanol, gasoline, etc.) in a combustion chamber, and rotates a turbine with the exhaust flow generated when the high-temperature, high-pressure combustion gas is discharged. The turbine is coaxially connected to a turbine connector 11 provided on a rotor shaft 10 of the generator 1, and the rotor shaft 10 rotates due to the rotation of the turbine. In other words, the generator 1 and the gas turbine engine 2 constitute a power generation system 100, and the generator 1 generates power using the output of the gas turbine engine 2. Note that, hereinafter, the gas turbine engine 2 side in the axial direction of the generator 1 will also be referred to as a first end side, and the opposite side will also be referred to as a second end side.

[0017] A portion of the high-temperature, high-pressure air (hereinafter also simply referred to as gas) generated by being compressed by the compressor of the gas turbine engine 2 flows through a gas outlet passage (not shown) of the gas turbine engine 2 and is supplied to a gas flow path 70 of the housing 40, which will be described later. Note that combustion gas exhausted from the gas turbine engine 2 may be supplied to the gas flow path 70 of the housing 40 through a purification filter or the like.

[0018] Next, details of the housing 40 will be described with reference to Figures 2 to 6. In Figures 2 to 5, the flow of refrigerant is indicated by a solid line, the flow of gas by a dashed dotted line, and the flow of oil by a dashed two dotted line.

[0019] The housing 40 has a main body 41 and a flange 42 provided at an end portion on the first end side of the main body 41. The flange 42 is fixed to the gas turbine engine 2 (see FIG. 1).

[0020] 3, the main body 41 has a double cylindrical shape and includes an outer wall 411 on the radially outer side and an inner wall 412 spaced a predetermined distance in the radial direction from the inner circumferential surface of the outer wall 411. Components of the generator 1, such as the rotor 20, the stator 30, and the bearings 51 and 52, are disposed in an accommodation space S radially inside the inner wall 412. The main body 41 also has a bottom wall 413 provided at an end on the first end side and positioned radially inside the flange portion 42. The bottom wall 413 has a hole 414 through which the rotor shaft 10 can be inserted.

[0021] The housing 40 also includes an oil supply section 90, a water jacket 60, a gas flow path 70, and an oil flow path 80.

[0022] 3, the oil supply unit 90 is provided on the first end side of the housing 40 and supplies oil from outside the housing 40 to the storage space S. The oil supply unit 90 has an oil supply port 91 which serves as an oil inlet, an oil supply flow path 92 which communicates with the oil supply port 91 and is provided in the bottom wall 413, and three oil supply holes 93 which are provided in the oil supply flow path 92 and which communicate with the storage space S. Note that although three oil supply holes 93 are provided in this embodiment, the number of oil supply holes 93 can be any number.

[0023] Oil is introduced from an oil supply port 91, passes through an oil supply passage 92, and is supplied to the accommodation space S from an oil supply hole 93. The oil flows through the accommodation space S from the first end to the second end, and is used to cool and lubricate each part such as the rotor 20, the stator 30, and the bearings 51 and 52.

[0024] The oil supply unit 90 is provided with a second oil outlet 94 that communicates with the oil supply passage 92 and discharges the oil supplied to the oil supply passage 92 to the outside of the housing 40. The oil discharged from the second oil outlet 94 circulates so as to be supplied again to the accommodation space S from the oil supply port 91 via an external oil passage (not shown).

[0025] The water jacket 60 cools each component of the generator 1 by supplying a refrigerant (e.g., cooling water) therein. For example, the space between the outer wall 411 and the inner wall 412 shown in FIG. 3 is part of the water jacket 60. FIG. 4 shows the external appearance of the water jacket 60, in other words, the refrigerant flowing through the water jacket 60. Note that FIG. 4 also shows the gas outlet 70b of the gas flow path 70 and the first oil outlet 80b of the oil flow path 80, although they are not the water jacket 60. FIG. 5 also shows the external appearance of the water jacket 60. Details of the water jacket 60 will be described later.

[0026] High-temperature gas generated in the gas turbine engine 2 flows through the gas flow path 70. As shown in Figures 2, 3, and 5, the gas flow path 70 is located radially outward of the outer wall 411 and is provided along a portion of the outer wall 411 in the circumferential direction.

[0027] 3 and 5, the gas flow path 70 has a gas inlet 70a provided in the bottom wall 413 and a gas outlet 70b provided on the second end side. The gas flow path 70 extends from the first end side to the second end side of the housing 40. The gas inlet 70a communicates with a gas outlet side of the gas turbine engine 2, and high-temperature gas is introduced into the gas flow path 70 from the gas inlet 70a. The gas outlet 70b of the gas flow path 70 communicates with the accommodation space S of the housing 40.

[0028] The high-temperature gas generated in the gas turbine engine 2 is cooled by heat exchange with the refrigerant flowing in the water jacket 60 while flowing through the gas flow path 70, and is then supplied to the accommodation space S. Details of the heat exchange between the gas and the refrigerant will be described later.

[0029] Oil supplied from the oil supply unit 90 to the accommodation space S is guided through the oil flow path 80. As shown in FIGS. 2 and 3, the outer wall 411 is formed with a protrusion 411a that protrudes radially outward at a position opposite the gas flow path 70 with the accommodation space S in between. The protrusion 411a extends in the axial direction of the housing 40, and a portion of the oil flow path 80 is provided in the space between the protrusion 411a and the inner wall 412. Furthermore, the outer wall 411 is formed with a protrusion 411b on the second end side that extends from near the gas flow path 70 to the protrusion 411a.

[0030] 3 and 5, the oil flow path 80 has an oil inlet 80a provided near the gas flow path 70 on the second end side, and a first oil outlet 80b provided on the first end side of the protruding portion 411a. The oil flow path 80 also has a circumferential oil flow path 81 provided in the space between the protruding portion 411b and the inner side wall 412, and an axial oil flow path 82 provided in the space between the protruding portion 411a and the inner side wall 412. The circumferential oil flow path 81 extends from the oil inlet 80a to the protruding portion 411a on the second end side. The axial oil flow path 82 is connected to the circumferential oil flow path 81 and the first oil outlet 80b, and extends from the second end side to the first end side.

[0031] 3, the oil flow path 80 is made up of multiple pipes. The oil inlet 80a is connected to the accommodation space S. The first oil outlet 80b is connected to an external oil flow path (not shown), and the oil circulates so that it is supplied again to the accommodation space S from the oil supply port 91 via the external oil flow path.

[0032] The oil guided to the oil flow path 80 is cooled by exchanging heat with the refrigerant flowing through the water jacket 60 while flowing through the oil flow path 80, and is then supplied again to the accommodation space S via the external oil flow path. Details of the heat exchange between the oil and the refrigerant will be described later.

[0033] As described above, the housing 40 of this embodiment is configured so that the gas and oil flow through the gas flow passage 70 and the oil flow passage 80, respectively, and exchange heat with the refrigerant flowing through the water jacket 60.

[0034] The water jacket 60 will be described in detail below.

[0035] 4, the water jacket 60 has a first refrigerant flow path 61 corresponding to the space between the outer wall 411 and the inner wall 412, a second refrigerant flow path 62 provided along the gas flow path 70 (see FIG. 5), and a third refrigerant flow path 63 provided along the oil flow path 80 (see FIG. 5) corresponding to the space between the protruding portions 411a, 411b and the inner wall 412. Note that the protruding portions 411a, 411b are part of the outer wall 411, and therefore the third refrigerant flow path 63 can also be said to be part of the first refrigerant flow path 61.

[0036] The water jacket 60 also has a refrigerant inlet 60a, which is a refrigerant supply port, and a refrigerant outlet 60b, which is a refrigerant discharge port. The refrigerant is supplied into the water jacket 60 from the refrigerant inlet 60a, flows to fill the first refrigerant flow path 61, the second refrigerant flow path 62, and the third refrigerant flow path 63, and is discharged from the refrigerant outlet 60b. Three refrigerant inlets 60a are provided in a portion of the circumferential direction on the second end side of the water jacket 60. This portion is located on the second end side of the gas flow path 70. The refrigerant outlet 60b is provided on the opposite side of the refrigerant inlet 60a in the circumferential direction of the water jacket 60 and in approximately the center in the axial direction. Although three refrigerant inlets 60a are provided, the number is not limited to three and may be any number.

[0037] Although not shown, the refrigerant inlet 60a and the refrigerant outlet 60b communicate with an external flow path to form a circulation flow path. The circulation flow path is equipped with a pump and a heat exchanger, and is configured so that a sufficiently cooled refrigerant is supplied into the water jacket 60 from the refrigerant inlet 60a.

[0038] The first refrigerant flow path 61 has a hollow cylindrical shape. The refrigerant in the first refrigerant flow path 61 fills the first refrigerant flow path 61 so as to cover the accommodation space S from the radial outside, and therefore can cool each component in the accommodation space S.

[0039] Similar to the gas flow path 70, the second refrigerant flow path 62 is located radially outward of the outer wall 411 and is provided along a portion of the outer wall 411 in the circumferential direction. The second refrigerant flow path 62 extends from the second end to the first end along the gas flow path 70. In other words, the gas flow path 70 is a flow path provided in the water jacket 60, and is a flow path through which the refrigerant in the water jacket 60 flows.

[0040] As shown in Figure 4, the second refrigerant flow path 62 has an inlet 62a provided on the second end side that is connected to the first refrigerant flow path 61 and / or the refrigerant inlet 60a, and an outlet 62b provided on the first end side that is connected to the first refrigerant flow path 61.

[0041] As shown in Fig. 6, a plurality of second refrigerant flow paths 62 and a plurality of gas flow paths 70 are provided. Each second refrigerant flow path 62 has a cross section in the shape of a regular hexagon, and each gas flow path 70 has a cross section in the shape of a hexagonal star. The plurality of gas flow paths 70 are arranged in a zigzag or staggered pattern, and the second refrigerant flow paths 62 are arranged between and / or around adjacent gas flow paths 70. Since a plurality of second refrigerant flow paths 62 are arranged to surround one gas flow path 70, the gas cooling efficiency can be improved.

[0042] High-temperature gas generated in the gas turbine engine 2 flows through the gas flow path 70 and exchanges heat with the refrigerant flowing through the second refrigerant flow path 62, thereby being cooled. The gas flow path 70 and the second refrigerant flow path 62 extend from the first end to the second end in the axial direction of the water jacket 60, ensuring sufficient flow path length. Therefore, sufficient heat exchange can be achieved between the high-temperature gas flowing through the gas flow path 70 and the refrigerant flowing through the second refrigerant flow path 62. A plurality of gas flow paths 70 are provided, and a plurality of second refrigerant flow paths 62 are provided along these gas flow paths 70, so the surface area over which heat exchange occurs between the high-temperature gas and the refrigerant is increased, further facilitating heat exchange.

[0043] The gas cooled by heat exchange with the refrigerant is supplied from the gas outlet 70b to the accommodation space S, and cools components such as the rotor 20, the stator 30, and the bearings 51 and 52. In this way, the water jacket 60 (specifically, the second refrigerant flow path 62) cools the high-temperature gas generated in the gas turbine engine 2 within the gas flow path 70, and can be used to cool each component of the generator 1.

[0044] The third refrigerant flow path 63 is a flow path provided along the oil flow path 80. Specifically, the third refrigerant flow path 63 has a circumferential refrigerant flow path 631 along the circumferential oil flow path 81 and an axial refrigerant flow path 632 along the axial oil flow path 82. The circumferential refrigerant flow path 631 is provided on the second end side of the first refrigerant flow path 61, and the refrigerant flows in the space between the protruding portion 411b of the outer wall 411 and the inner wall 412. The axial refrigerant flow path 632 extends from the second end side to the first end side in the axial direction, and the refrigerant flows in the space between the protruding portion 411a of the outer wall 411 and the inner wall 412.

[0045] The circumferential refrigerant flow path 631 and the axial refrigerant flow path 632 are connected to the first refrigerant flow path 61, i.e., the refrigerant flowing through the first refrigerant flow path 61 also flows through the third refrigerant flow path 63. As a result, the oil flowing through the oil flow path 80 exchanges heat with the refrigerant flowing through the third refrigerant flow path 63, and is cooled. Because the oil flow path 80 extends from the second end side to the first end side, a sufficient flow path length is ensured. Therefore, sufficient heat exchange can be achieved between the oil and the refrigerant in the third refrigerant flow path 63.

[0046] The oil flowing through the oil flow path 80 is discharged to the outside of the housing 40 from the first oil outlet 80b, and circulates through an external oil flow path (not shown) so that it is supplied again to the accommodation space S from the oil supply port 91. In other words, the oil flow path 80 is a flow path in which the oil supplied to the accommodation space S is cooled, and also a flow path in which the oil supplied to the accommodation space S is cooled.

[0047] As described above, in the housing 40 of this embodiment, the gas and oil supplied to the components inside the housing 40 (the rotor 20, the stator 30, the bearings 51, 52, etc.) are cooled by a single water jacket 60. In other words, the heat exchanger that cools the gas and the heat exchanger that cools the oil are integrated in the water jacket 60, and there is no need to provide each heat exchanger separately, so the cooling mechanism of the generator 1 can be made compact.

[0048] As described above, a portion of the oil flow path 80 (in the embodiment, the axial oil flow path 82) is provided on the opposite side of the gas flow path 70 across the accommodation space S. Therefore, even in a configuration in which the gas and oil are cooled by one water jacket 60, it is possible to prevent the heat exchange between the gas and the refrigerant and the heat exchange between the oil and the refrigerant from affecting each other. Note that the entire oil flow path 80 may be provided on the opposite side of the gas flow path 70 across the accommodation space S.

[0049] The housing 40 of this embodiment can be manufactured by metal additive manufacturing (AM), i.e., 3D printing, using powdered metal. AM is a well-known molding technique that uses an electron beam or fiber laser to melt metal powder and solidify it into layers to produce metal parts. It enables the molding of metal components with complex three-dimensional shapes, enabling the creation of fine, dense 3D shapes. 3D printing AM allows the gas flow path 70, oil flow path 80, and water jacket 60 to be integrally formed with the main body 41. In other words, the housing 40 can be formed as a single component including the main body 41, water jacket 60, gas flow path 70, and oil flow path 80, contributing to reducing the weight and manufacturing costs of the housing 40. Furthermore, 3D printing AM allows the dimensions of the water jacket 60, gas flow path 70, and oil flow path 80 to be easily designed. Furthermore, it allows the creation of complex shapes such as the gas flow path 70 and the second refrigerant flow path 62, which allow for efficient cooling of gas and oil.

[0050] Although one embodiment of the present invention has been described above with reference to the accompanying drawings, it goes without saying that the present invention is not limited to such an embodiment. It is clear that a person skilled in the art can conceive of various modifications or alterations within the scope of the claims, and it is understood that these also naturally fall within the technical scope of the present invention. Furthermore, the components of the above embodiment may be combined in any manner without departing from the spirit of the invention.

[0051] For example, in the above-described embodiment, the generator 1 is used as an example of the rotating electric machine of the present invention, but the present invention is not limited to this. The rotating electric machine of the present invention may be a motor as a drive source.

[0052] In the above-described embodiment, the gas turbine engine 2 is used as an example of the internal combustion engine connected to the rotating electric machine of the present invention, but the present invention is not limited to this. The internal combustion engine may be an internal combustion engine other than a gas turbine engine (for example, a reciprocating engine).

[0053] In the above-described embodiment, a configuration has been described in which high-temperature gas generated in the gas turbine engine 2 connected to the generator 1 is supplied to the generator 1, but the present invention is not limited to this. For example, a configuration may be used in which gas is supplied to the generator 1 from a gas outlet of a compressor provided separately from the gas turbine engine 2.

[0054] In the above-described embodiment, the gas flow path 70 and the oil flow path 80 are provided in the water jacket 60, but this is not limited thereto. For example, the gas flow path 70 and / or the oil flow path 80 may be provided outside the water jacket 60 as long as the gas and oil are configured to be able to exchange heat with the refrigerant flowing through the water jacket 60.

[0055] In the above-described embodiment, the gas flow path 70 and the second refrigerant flow path 62 are formed in a solid cross section, but this is not limited thereto. The gas flow path 70 and the second refrigerant flow path 62 may be formed by pipes or the like. Similarly, in the above-described embodiment, the oil flow path 80 is formed by a plurality of pipes provided in the water jacket 60, but this is not limited thereto. The oil flow path 80 may be formed in a solid cross section.

[0056] In the above-described embodiment, the gas flow passage 70 is provided radially outside the outer wall 411, and the oil flow passage 80 is provided in the protruding portions 411a and 411b of the outer wall 411, but this is not limiting. The gas flow passage 70 and the oil flow passage 80 may also be provided in the space between the outer wall 411 and the inner wall 412.

[0057] In the above-described embodiment, the cross section of the gas flow path 70 is shaped like a six-pointed star, and the cross section of the second refrigerant flow path 62 is shaped like a hexagon, but they are not limited to this and may have any shape. Furthermore, their arrangement may also be designed as desired.

[0058] The gas or oil supplied to each component (rotor 20, stator 30, bearings 51, 52, etc.) in the storage space S does not necessarily have to be used to cool all components, but may be used to cool or lubricate any one component.

[0059] This specification describes at least the following: In parentheses, components corresponding to those in the above-described embodiments are shown as examples, but the present invention is not limited to these.

[0060] (1) A rotating electric machine housing (housing 40) capable of accommodating components (rotor 20, stator 30, bearings 51, 52) of a rotating electric machine (generator 1), a hollow main body portion (main body portion 41) having an accommodation space (accommodation space S) in which the component is accommodated; a water jacket (water jacket 60) provided in the main body; an oil flow path (oil flow path 80) that communicates with the accommodation space and through which oil supplied to the component flows; a gas flow path (gas flow path 70) that communicates with the accommodation space and through which gas supplied to the component flows; The rotating electrical machine housing, wherein the oil flow path and the gas flow path are provided so that the oil and the gas can exchange heat with a refrigerant flowing through the water jacket.

[0061] According to (1), the oil flow path and the gas flow path are arranged so that the oil and gas supplied to the components in the housing space can exchange heat with the refrigerant flowing through the water jacket. Because the oil and gas can be cooled by a common water jacket, there is no need to provide separate heat exchangers for cooling the gas and the oil. This allows the cooling mechanism of the rotating electrical machine to be made compact.

[0062] (2) The rotating electrical machine housing according to (1), The oil flow path and the gas flow path are provided in the water jacket.

[0063] According to (2), the oil flow path and the gas flow path are provided in the water jacket, so that the oil and the gas can be cooled with a more compact configuration.

[0064] (3) A rotating electrical machine housing according to (1) or (2), The water jacket has a hollow cylindrical shape and is provided radially inward of the outer surface of the main body of the rotating electric machine housing.

[0065] According to (3), the water jacket is provided radially inward from the outer surface of the housing body, thereby cooling the rotating electrical machine components. That is, the water jacket cools the rotating electrical machine components, the oil in the oil flow path, and the gas in the gas flow path.

[0066] (4) A rotating electrical machine housing according to any one of (1) to (3), The water jacket has a hollow cylindrical shape, The oil flow path and the gas flow path extend from one end (first end) of the water jacket to the other end (second end) in the axial direction of the rotary electric machine housing.

[0067] According to (4), the oil flow path and the gas flow path extend from one end to the other in the axial direction of the water jacket, ensuring sufficient length for each flow path, thereby enabling sufficient heat exchange between the oil and the refrigerant and between the gas and the refrigerant.

[0068] (5) A rotating electric machine housing according to any one of (1) to (4), The water jacket has a hollow cylindrical shape, At least a part of the oil flow path (axial oil flow path 82) is provided on the opposite side of the accommodation space from the gas flow path.

[0069] According to (5), at least a portion of the oil flow path is provided on the opposite side of the gas flow path across the storage space, so that the heat exchange between the gas and the refrigerant and the heat exchange between the oil and the refrigerant can be prevented from affecting each other.

[0070] (6) A rotating electric machine housing according to any one of (1) to (5), a plurality of the gas flow paths are provided in the water jacket; The water jacket is a rotary electric machine housing having a plurality of refrigerant flow paths (second refrigerant flow paths 62) provided along the plurality of gas flow paths.

[0071] According to (6), the water jacket has multiple gas flow paths and multiple refrigerant flow paths arranged along the gas flow paths, which increases the surface area where heat exchange occurs between the gas and the refrigerant, thereby further promoting heat exchange.

[0072] (7) A rotating electric machine housing according to any one of (1) to (6), The rotating electric machine housing, wherein the main body, the gas flow path, the oil flow path, and the water jacket are integrally formed by additive manufacturing using powdered metal.

[0073] According to (7), the main body, gas flow path, oil flow path, and water jacket can be integrally formed by additive manufacturing using powder metal. This contributes to weight reduction and reduced manufacturing costs. In addition, the flow path lengths and dimensions of the water jacket, gas flow path, and oil flow path can be easily designed. Furthermore, it is possible to create gas flow paths, oil flow paths, and water jackets with complex shapes that can efficiently cool the gas and oil.

[0074] (8) A rotating electric machine housing according to any one of (1) to (7), A rotating electric machine (generator 1) including a rotor (rotor 20) and a stator (stator 30) housed in the main body, The rotor shaft (rotor shaft 10) of the rotor is connected to a rotation shaft of an internal combustion engine (gas turbine engine 2) that generates the gas, the gas flow path communicates with a gas outlet of the internal combustion engine; the water jacket cools the gas flowing through the gas flow path; The gas that has passed through the gas flow path and been cooled is supplied to at least one of the rotor and the stator.

[0075] According to (8), the gas generated in the internal combustion engine is cooled in the gas flow path and supplied to the rotor and / or stator. Therefore, the gas generated in the internal combustion engine can be cooled in the gas flow path and used to cool the rotor and / or stator.

[0076] (9) A rotating electric machine housing according to any one of (1) to (7), A rotating electric machine (generator 1) including a rotor (rotor 20) and a stator (stator 30) housed in the main body, The main body is provided with an oil supply port (oil supply port 91) for supplying oil to the accommodation space, At least one of the rotor and the stator is cooled by the oil supplied from the oil supply port, the oil that has cooled at least one of the rotor and the stator is guided into the oil flow path that communicates with the accommodation space, The water jacket cools the oil flowing through the oil passage.

[0077] According to (9), the water jacket can cool the oil that has exchanged heat with the rotor and / or the stator.

[0078] (10) An additive manufacturing method for additively manufacturing the rotating electric machine housing according to any one of (1) to (6) using powdered metal, comprising: An additive manufacturing method for integrally forming the main body portion, the gas flow path, the oil flow path, and the water jacket.

[0079] According to (10), the main body, gas flow path, oil flow path, and water jacket can be integrally formed by additive manufacturing using powder metal. This contributes to weight reduction and reduced manufacturing costs. In addition, the flow path lengths and dimensions of the water jacket, gas flow path, and oil flow path can be easily designed. Furthermore, it is possible to create gas flow paths, oil flow paths, and water jackets with complex shapes that can efficiently cool the gas and oil. [Explanation of symbols]

[0080] 1. Generator (rotating electric machine) 2. Gas turbine engine (internal combustion engine) 10 rotor shaft 20 rotors 30 Stator 40 Housing (rotating electric machine housing) 41 Main body 60 Water Jacket 62 Second refrigerant flow path (refrigerant flow path) 70 Gas flow path 80 Oil flow path 82 Axial oil passage 91 Oil supply port S Storage space

Claims

1. A rotating electric machine housing capable of accommodating components of a rotating electric machine, a hollow body portion having an accommodation space in which the component is accommodated; a water jacket provided in the main body; an oil flow path that communicates with the accommodation space and through which oil supplied to the component flows; a gas flow path that communicates with the accommodation space and through which gas supplied to the component flows, The oil flow path and the gas flow path are provided so that the oil and the gas can exchange heat with a refrigerant flowing through the water jacket.

2. 2. The rotating electrical machine housing according to claim 1, The oil flow path and the gas flow path are provided in the water jacket.

3. 3. The rotating electrical machine housing according to claim 1, The water jacket has a hollow cylindrical shape and is provided radially inward of the outer surface of the main body of the rotating electric machine housing.

4. The rotating electrical machine housing according to any one of claims 1 to 3, The water jacket has a hollow cylindrical shape, The oil flow path and the gas flow path extend from one end side to the other end side in the axial direction of the water jacket.

5. The rotating electrical machine housing according to any one of claims 1 to 4, The water jacket has a hollow cylindrical shape, At least a portion of the oil flow path is provided on the opposite side of the accommodation space from the gas flow path.

6. The rotating electrical machine housing according to any one of claims 1 to 5, a plurality of the gas flow paths are provided in the water jacket; The water jacket has a plurality of refrigerant flow paths provided along the plurality of gas flow paths.

7. The rotating electrical machine housing according to any one of claims 1 to 6, The rotating electric machine housing, wherein the main body, the gas flow path, the oil flow path, and the water jacket are integrally formed by additive manufacturing using powdered metal.

8. A rotating electrical machine housing according to any one of claims 1 to 7; a rotor and a stator housed in the main body, a rotor shaft of the rotor is connected to a rotating shaft of an internal combustion engine that generates the gas; the gas flow path communicates with a gas outlet of the internal combustion engine; the water jacket cools the gas flowing through the gas flow path; The gas that has passed through the gas flow path and been cooled is supplied to at least one of the rotor and the stator.

9. A rotating electrical machine housing according to any one of claims 1 to 7; a rotor and a stator housed in the main body, The main body is provided with an oil supply port for supplying oil to the accommodation space, At least one of the rotor and the stator is cooled by the oil supplied from the oil supply port, the oil that has cooled at least one of the rotor and the stator is guided into the oil flow path that communicates with the accommodation space, The water jacket cools the oil flowing through the oil passage.

10. 7. An additive manufacturing method for additively manufacturing the rotating electric machine housing according to claim 1 using powdered metal, comprising: An additive manufacturing method for integrally forming the main body portion, the gas flow path, the oil flow path, and the water jacket.

Citation Information

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